The present disclosure relates to a temperature estimation device, an air conditioner, and a temperature calculation method.
An air conditioner described in Patent Document 1 includes a control device, a calendar recording means, and a set temperature changing means. The control device is configured to switch over operating modes of heating, dehumidification, and cooling, according to relationships among outdoor air temperature, indoor temperature, and set temperature. The set temperature changing means changes the set temperature according to the calendar stored in the calendar recording means.
Patent Document 1: Japanese Unexamined Patent Publication No. 2009-092322
A first aspect of the present disclosure is directed to a temperature estimation device (10). The temperature estimation device (10) includes: an acquisition unit (11A) configured to acquire environmental information, the environmental information being a value indicative of an environment experienced by a subject in the past; and a control unit (13) configured to calculate out an estimated comfortable temperature on the basis of the environmental information, the estimated comfortable temperature being a temperature estimated to be a comfortable temperature for the subject.
One embodiment of the present disclosure will be described with reference to the drawings. Note that like reference characters denote the same or equivalent components in the drawings, and the detailed description thereof, the description of advantages associated therewith, and other descriptions will not be repeated.
A temperature estimation system (1) according to one embodiment of the present disclosure will be described with reference to
As illustrated in
The output device (20) is configured to output environmental information. The environmental information is a value indicative of an environment experienced by a subject in the past. In the environmental information, the value indicative of an environment may include, for example, a temperature, predicted mean vote (PMV), standard new effective temperature (SET*), and/or wet bulb globe temperature (WBGT). In the environmental information, the value indicative of an environment is not limited to a value based on one type of physical quantity such as temperature but may be a value based on a plurality of types of physical quantities such as temperature and humidity such as PMV, SET*, or WBGT. In this embodiment, the environmental information is an experienced temperature indicative of an air temperature of an environment experienced by the subject in the past. The output device (20) includes a temperature sensor (21) for measuring an air temperature.
The temperature estimation device (10) is a device configured to calculate out an estimated comfortable temperature, which is estimated to be a comfortable temperature for the subject. In this embodiment, the temperature estimation device (10) is a terminal such as a smartphone or a personal computer (PC). In this embodiment, the temperature estimation device (10) is configured such that an application program for calculation process for calculating out the estimated comfortable temperature is installed therein and that the temperature estimation device (10) executes the application program to perform the calculation process.
As illustrated in
The communication unit (11) is a device for communicating with an external device such as the output device (20). The communication unit (11) is communicably connected to the output device (20) in a wired or wireless manner. The communication unit (11) includes, for example, at least one of a device for performing wireless communication (such as a wireless LAN module) or a device for performing wired communication (such as a communication port connected to a communication cable). The communication unit (11) includes an acquisition unit (11A) configured to acquire information, and an output unit (11B) configured to output information. The acquisition unit (11A) acquires environmental information (experienced temperature) output from the output device (20).
The storage (12) includes a main memory (e.g., a semiconductor memory), such as a flash memory, a read only memory (ROM), and a random access memory (RAM), and may further include an auxiliary memory (e.g., a hard disk drive, a solid state drive (SSD), a secure digital (SD) memory card, or a universal serial bus (USB) flash memory). The storage (12) is configured to store therein various computer programs executable by the control unit (13).
The storage (12) stores therein correlation information (12A). The correlation information (12A) is information (such as a calculation formula, a table, a graph, a diagram, or a map) indicating a correlation between the environmental information (experienced temperature) and the estimated comfortable temperature. The correlation information (12A) will be described later.
The control unit (13) includes a processor, such as a CPU or an MPU. The control unit (13) executes a computer program stored in the storage (12) so as to control elements of the temperature estimation device (10).
The outline of an operation of the temperature estimation system (1) will be described with reference to
As illustrated in
Referring to
A general configuration of the first variation of the output device (20) will be described below.
As illustrated in
The temperature estimation system (1) further includes a management server (40). The management server (40) is a server for managing the environmental information (experienced temperature) output from the output device (20). The management server (40) is communicably connected to each of the output device (20) and the temperature estimation device (10).
A usage example of the first variation of the output device (20) will be described below.
The subject spends a predetermined time (e.g., one week), carrying the output device (20) (temperature sensor (21) and communication terminal (22)). The output device (20) outputs the experienced temperature of the subject to the management server (40) by the communication function of the communication terminal (22) every predetermined time (e.g., every one hour), the experienced temperature being measured by the temperature sensor (21). The management server (40) accumulates a history of the experienced temperature of the subject, which has been output from the communication terminal (22). The temperature estimation device (10) acquires the history of the experienced temperature of the subject from the management server (40), and calculates out an estimated comfortable temperature for the subject on the basis of the history of the experienced temperature thus acquired.
Referring to
A general configuration of the second variation of the output device (20) will be described below.
As illustrated in
A usage example of the second variation of the output device (20) will be described below.
As illustrated in
The communication terminal (22) performs, for example, every predetermined time (e.g., one hour), the process of acquiring the experienced temperature of the subject from the weather server (S).
Each of the first variation of the output device (20) (see
Next, a procedure of calculating out the estimated comfortable temperature by the control unit (13) of the temperature estimation device (10) will be described, referring to
The control unit (13) of the temperature estimation device (10) calculates out the estimated comfortable temperature, referring to the correlation information (12A) (see
The correlation information (12A) is expressed by Equation 1 below:
“CT” is the estimated comfortable temperature. “T” is an assigned value. The assigned value T is a value based on the experienced temperature. The coefficients of Equation 1 are statistically worked out in advance from the correlation between the estimated comfortable temperature CT and the assigned value T.
The control unit (13) of the temperature estimation device (10) calculates out an estimated comfortable temperature CT on the basis of the experienced temperature acquired by the acquisition unit (11A). More specifically, the control unit (13) works out the assigned value T on the basis of the experienced temperature acquired by acquisition unit (11A), and calculates out the estimated comfortable temperature CT on the basis of the assigned value T and the correlation information (12A). In this embodiment, the control unit (13) calculates out the estimated comfortable temperature CT by assigning the assigned value T in Equation 1 representing the correlation information (12A).
Hereinafter, first to sixth examples of the assigned value T will be described.
In the first example, the assigned value T is represented by an average value of the experienced temperatures for N days. More specifically, in the first example, the assigned value T is represented by Equation 2 below:
“N” is a natural number. “i” is an integer equal to or more than 1 but not more than N (1 ≤ i ≤ N). “Ti” is an experienced temperature on Day i among Day 1 to Day N. “∑Ti” indicates the total sum of experienced temperatures (experienced temperature T1 to experienced temperature TN) for N days.
As described above, the experienced temperature Ti is the experienced temperature on Day i. However, if the experienced temperature is measured multiple times on Day i (e.g., the experienced temperature is measured every 4 hours on Day i), so that there are multiple experienced temperatures on Day i, an average or median value, for example, of the multiple experienced temperatures on Day i is set as the experienced temperature Ti for Day i.
In the second example, the assigned value T is represented by a median value of the experienced temperatures for N days.
In the third example, the assigned value T is represented by a weighted average of the experienced temperatures for N days, as represented by Equation 3. More specifically, the third example is such that the assigned value T is represented by Equation 3 below:
According to Equation 3, “ai” is such a real number that the total sum of a1 to aN is 1 (∑ai = 1). According to Equation 3, ∑(ai∗Ti) is the total sum of (a1∗T1) to (aN∗TN).
In this embodiment, a1 to aN are set such that a later-measured experienced temperature among the experienced temperature T1 to the experienced temperature TN gives a greater influence on the assigned value T. More specifically, a1 to aN are greater in the ascending order of a1 to aN (i.e., a1<a2< ... <a(N-1)<aN).
Referring to
As illustrated in
The first list (L1) is configured such that a plurality of experienced temperatures are listed in time series. The first list (L1) is configured such that a plurality of experienced temperatures are associated with the measurement times at which the respective experienced temperatures were measured.
Measurement time at which the experienced temperature was measured is output together with the experienced temperature from the output device (20). More specifically, the output device (20), which outputs an experienced temperature, creates and outputs association information in which the experienced temperature and the measurement time of the experienced temperature are associated with each other. Consequently, the first list (L1) in which the experienced temperature and the measurement time of the experienced temperature are associated with each other is created.
In the fourth example, the assigned value T is any one of the plurality of experienced temperatures included in the first list (L1). The control unit (13) assigns the respective experienced temperatures included in the first list (L1) into the assigned value T in Equation 1 to calculate out the estimated comfortable temperatures CT corresponding to the respective measurement times included in the first list (L1) (see
In this embodiment, the measurement times in the first list (L1) are on an hourly basis (see
Referring to
As illustrated in
In the fifth example, the assigned value T is any one of the plurality of average values included in the second list (L2). The control unit (13) assigns the respective average values included in the second list (L2) into the assigned value T in Equation 1 to calculate out the estimated comfortable temperatures CT corresponding to the respective measurement times included in the second list (L2). In this way, the control unit (13) can calculate out the moving average of the estimated comfortable temperatures CT (see
In this embodiment, the measurement times in the second list (L2) are on a daily basis (see
Optionally, in the fifth example, instead of the plurality of average values of experienced temperatures, a plurality of median values of experienced temperatures (for example, median values of Day n to Day (N + n-1) (where n = 1, 2, 3, ...)) may be used, or a weighted average value of the plurality of experienced temperatures (for example, a weighted average value of Day n to Day (N + n-1) (where n = 1, 2, 3, ...)) may be used.
As illustrated in
In the sixth example, the assigned value T is any one of the plurality of experienced temperatures (z1° C., z2° C., ...) included in the third list (L3). The control unit (13) assigns the respective experienced temperatures included in the third list (L3) into the assigned value T in Equation 1 to calculate out the estimated comfortable temperatures CT corresponding to the respective measurement dates and times included in the third list (L3).
As described above with reference to
While the embodiments and variations thereof have been described above, it will be understood that various changes in form and details may be made without departing from the spirit and scope of the claims (e.g., (1) to (2)). The embodiments and the variations thereof may be combined and replaced with each other without deteriorating intended functions of the present disclosure.
(1) The correlation information (12A) is not limited to Equation 1 (CT = 0.31 *T+17.8). For example, if temperature-output information (such as a calculation formula, a table, a graph, a diagram, or a map) for outputting, with respect to a temperature of outside air, a temperature that average persons would feel comfortable (average comfortable temperature) is available, the temperature-output information may be employed as the correlation information (12A). The temperature-output information represents a correlation between the temperature of outside air and the average comfortable temperature. The temperature-output information is configured so that the average comfortable temperature is derived from the temperature-output information once the temperature of outside air is determined. For example, the temperature-output information may be configured so that the average comfortable temperature to be output is lower with respect to a lower temperature of outside air. If the temperature-output information is employed as the correlation information (12A), the estimated comfortable temperature for the subject is derived instead of the average comfortable temperature by using, in the temperature-output information, the assigned value T in any one of the first to sixth examples instead of the temperature of outside air.
(2) As shown in
The air conditioner (30) is connected with a management server (40), which manages the experienced temperatures of the subject, or an output device (20) (see
The air conditioner (30) is configured so that the control unit (13) of the temperature estimation device (10) calculates out the estimated comfortable temperature for the subject. With this configuration, if a plurality of subjects is present, the control unit (13) of the temperature estimation device (10) can calculate out estimated comfortable temperatures individually for the plurality of subjects. As a result, the air conditioner (30) can perform such temperature control in which, if any one of the plurality of subjects is a user of the air conditioner (30), the air conditioner (30) causes the temperature estimation device (10) to calculate out an estimated comfortable temperature for the user of the air conditioner (30) and sets the set temperature to the estimated comfortable temperature, thereby making it possible to perform temperature control in conformity with how the user of the air conditioner (30) feels as to air temperatures.
As described above, the present disclosure is usefully applicable to a temperature estimation device, an air conditioner, and a temperature calculation method.
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Number | Date | Country | Kind |
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2020-129410 | Jul 2020 | JP | national |
Number | Date | Country | |
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Parent | PCT/JP2021/024040 | Jun 2021 | WO |
Child | 18159330 | US |